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R2

Sr. Data Science (Time series & Forecasting models)

УдалённоBrazil только
Опубликовано
Роль
Data Science
Опыт
Синьор
Размер компании
Стартап
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Коротко по делу

Senior Data Scientist with 5+ years of ML/DL experience, strong stats/econometrics foundation, and fintech/risk understanding. Must have expertise in time series forecasting (statistical or ML/DL) and Python ML frameworks. Needs stakeholder management and ability to explain complex data to non-technical audiences.

Ключевые навыки

Time series forecastingForecasting modelsMachine Learning

Обязательные навыки

PythonTensorFlowPyTorchScikit-learnARIMASARIMASARIMAXVARexponential smoothingstate-space modelsRandom ForestXGBoostRNNsLSTMsTransformersBSTSProphetensemble forecastingGRUs

Чем предстоит заниматься

  • Lead forecasting initiatives by designing and implementing advanced time series models to predict sales and behavioural trends for thousands of customers.
  • Develop scalable machine learning solutions that power real-time decision-making across risk management, fraud detection, and product personalization.
  • Collaborate cross-functionally with product managers, engineers, and business stakeholders to translate complex data challenges into actionable insights and measurable business outcomes.
  • Drive innovation in fintech applications by experimenting with cutting-edge approaches (e.g., deep learning architectures, probabilistic forecasting, and transformer-based models).
  • Ensure compliance and transparency in model development, aligning with industry regulations and ethical standards for financial data usage.
  • Shape the data science strategy by identifying opportunities where predictive modeling can unlock new value streams and competitive advantages.

Что требуется

  • You have at least 5 years of experience with machine and deep learning in a practical setting.
  • You have a good understanding of fintech products, and risk management to interpret business data effectively.
  • You have a strong foundation in probability, statistics, and econometrics.
  • You have strong expertise in time series forecasting methods based on statistical analysis (ARIMA, SARIMA, SARIMAX, VAR, exponential smoothing, or state-space models), on Machine & Deep Learning (Random Forest, XGBoost, RNNs, LSTMs, or Transformers), or on Bayesian theory (BSTS, Prophet, or ensemble forecasting), among others.
  • You have deep knowledge of machine learning techniques for sequential data (RNNs, LSTMs, GRUs, Transformers).
  • You have strong proficiency in ML/DL frameworks in Python (e.g. Tensorflow, PyTorch, Scikit-learn).
  • You are comfortable consuming data through APIs, SFTP, or straight-up CSVs.
  • You care about scalable machine and deep learning solutions governed by low time and space complexity algorithms and methods.
  • You have experience with explainable AI, specially in the context of Deep Learning Forecasting time series methods.
  • You have a data-oriented mindset: you care about getting to the bottom of how to make decisions based on data.
  • You have stakeholder management experience, keeping everyone up-to-date with key findings and explaining in a non-technical way results, methodologies and processes for data-driven decision making.

R2

R2 enables platforms in Latin America to embed financial services that SMBs can then leverage, starting with revenue-based financing.

FintechСтартап
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